detects a voltage decrease of a predetermined value
for several biased pulses, the test passes.
The heater elements are tested each time the
engine is turned OFF if all the enabling conditions
are met. If the monitor fails, the PCM stores a
maturing fault and a Freeze Frame is entered. If two
consecutive tests fail, a DTC is stored. Because the
ignition is OFF, the MIL is illuminated at the begin-
ning of the next key cycle, after the 2nd failure.
Enabling Conditions—The following conditions
must be met for the PCM to run the oxygen sensor
heater test:
•
Engine run time of at least 5.1 minutes
•
Key OFF power down
•
Battery voltage of at least 10 volts
•
Sufficient Oxygen Sensor cool down
Pending Conditions—There are not conditions or
situations that prompt conflict or suspension of test-
ing. The oxygen sensor heater test is not run pending
resolution of MIL illumination due to oxygen sensor
failure.
Suspend—There are no conditions which exist for
suspending the Heater Monitor.
CATALYST MONITOR
To comply with clean air regulations, vehicles are
equipped with catalytic converters. These converters
reduce the emission of hydrocarbons, oxides of nitro-
gen and carbon monoxide.
Normal vehicle miles or engine misfire can cause a
catalyst to decay. A meltdown of the ceramic core can
cause a reduction of the exhaust passage. This can
increase vehicle emissions and deteriorate engine
performance, driveability and fuel economy.
The catalyst monitor uses dual oxygen sensors
(O2S’s) to monitor the efficiency of the converter. The
dual O2S strategy is based on the fact that as a cat-
alyst deteriorates, its oxygen storage capacity and its
efficiency are both reduced. By monitoring the oxy-
gen storage capacity of a catalyst, its efficiency can
be indirectly calculated. The upstream O2S is used to
detect the amount of oxygen in the exhaust gas
before the gas enters the catalytic converter. The
PCM calculates the A/F mixture from the output of
the O2S. A low voltage indicates high oxygen content
(lean mixture). A high voltage indicates a low content
of oxygen (rich mixture).
When the upstream O2S detects a high oxygen
condition, there is an abundance of oxygen in the
exhaust gas. A functioning converter would store this
oxygen so it can use it for the oxidation of HC and
CO. As the converter absorbs the oxygen, there will
be a lack of oxygen downstream of the converter. The
output of the downstream O2S will indicate limited
activity in this condition.
As the converter loses the ability to store oxygen,
the condition can be detected from the behavior of
the downstream O2S. When the efficiency drops, no
chemical reaction takes place. This means the con-
centration of oxygen will be the same downstream as
upstream. The output voltage of the downstream
O2S copies the voltage of the upstream sensor. The
only difference is a time lag (seen by the PCM)
between the switching of the O2S’s.
To monitor the system, the number of lean-to-rich
switches of upstream and downstream O2S’s is
counted.
The
ratio
of
downstream
switches
to
upstream switches is used to determine whether the
catalyst is operating properly. An effective catalyst
will have fewer downstream switches than it has
upstream switches i.e., a ratio closer to zero. For a
totally ineffective catalyst, this ratio will be one-to-
one, indicating that no oxidation occurs in the device.
The system must be monitored so that when cata-
lyst efficiency deteriorates and exhaust emissions
increase to over the legal limit, the MIL (check
engine lamp) will be illuminated.
Monitor Operation—To monitor catalyst effi-
ciency, the PCM expands the rich and lean switch
points of the heated oxygen sensor. With extended
switch points, the air/fuel mixture runs richer and
leaner to overburden the catalytic converter. Once
the test is started, the air/fuel mixture runs rich and
lean and the O2 switches are counted. A switch is
counted when an oxygen sensor signal goes from
below the lean threshold to above the rich threshold.
The number of Rear O2 sensor switches is divided by
the number of Front O2 sensor switches to determine
the switching ratio.
The test runs for 20 seconds. As catalyst efficiency
deteriorated over the life of the vehicle, the switch
rate at the downstream sensor approaches that of the
upstream sensor. If at any point during the test
period the switch ratio reaches a predetermined
value, a counter is incremented by one. The monitor
is enabled to run another test during that trip. When
the test fails three times, the counter increments to
three, a malfunction is entered, and a Freeze Frame
is stored. When the counter increments to three dur-
ing the next trip, the code is matured and the MIL is
illuminated. If the test passes the first, no further
testing is conducted during that trip.
The MIL is extinguished after three consecutive
good trips. The good trip criteria for the catalyst
monitor is more stringent than the failure criteria. In
order to pass the test and increment one good trip,
the downstream sensor switch rate must be less than
80% of the upstream rate (60% for manual transmis-
sions). The failure percentages are 90% and 70%
respectively.
25 - 4
EMISSIONS CONTROL
LH
EMISSIONS CONTROL (Continued)
Summary of Contents for 2004 Concorde
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Page 5: ...Fig 3 FASTENER IDENTIFICATION LH INTRODUCTION 3 FASTENER IDENTIFICATION Continued ...
Page 6: ...Fig 4 FASTENER STRENGTH 4 INTRODUCTION LH FASTENER IDENTIFICATION Continued ...
Page 9: ...Fig 6 METRIC CONVERSION CHART LH INTRODUCTION 7 METRIC SYSTEM Continued ...
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Page 956: ...Fig 1 3 5L Engine 9 4 ENGINE LH ENGINE 3 5L Continued ...
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Page 1060: ...Fig 12 ENGINE COMPARTMENT SIDE VIEW 13 6 FRAME BUMPERS LH FRAME Continued ...
Page 1061: ...Fig 13 FORWARD FRAME SECTION AND ENGINE CRADLE LH FRAME BUMPERS 13 7 FRAME Continued ...
Page 1062: ...Fig 14 REAR FRAME SECTION 13 8 FRAME BUMPERS LH FRAME Continued ...
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Page 1228: ...Neutral Speed Over 8 mph 21 48 TRANSAXLE LH 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1229: ...Reverse LH TRANSAXLE 21 49 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1231: ...First Gear LH TRANSAXLE 21 51 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1232: ...Second Gear 21 52 TRANSAXLE LH 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1233: ...Second Gear EMCC LH TRANSAXLE 21 53 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1234: ...Direct Gear 21 54 TRANSAXLE LH 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1235: ...Direct Gear EMCC LH TRANSAXLE 21 55 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1236: ...Direct Gear CC On 21 56 TRANSAXLE LH 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1237: ...Overdrive LH TRANSAXLE 21 57 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1238: ...Overdrive EMCC 21 58 TRANSAXLE LH 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1239: ...Overdrive CC On LH TRANSAXLE 21 59 42LE AUTOMATIC TRANSAXLE Continued ...
Page 1252: ...Fig 153 Master Shim Chart 21 72 TRANSAXLE LH BEARINGS Continued ...
Page 1370: ......
Page 1497: ...Fig 11 LOAD BEAM AND COWL AREA LH BODY STRUCTURE 23 127 SEALER LOCATIONS Continued ...
Page 1498: ...Fig 12 BODY SIDE APERTURE 23 128 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1500: ...Fig 14 FLOOR PAN 23 130 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1501: ...Fig 15 FLOOR PAN LH BODY STRUCTURE 23 131 SEALER LOCATIONS Continued ...
Page 1502: ...Fig 16 FLOOR PAN 23 132 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1503: ...Fig 17 REAR TRUNK AREA LH BODY STRUCTURE 23 133 SEALER LOCATIONS Continued ...
Page 1504: ...Fig 18 INNER WHEELHOUSE 23 134 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1505: ...Fig 19 REAR QUARTER PANE LH BODY STRUCTURE 23 135 SEALER LOCATIONS Continued ...
Page 1506: ...Fig 20 DECKLID 23 136 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1507: ...Fig 21 FRONT DOORS LH BODY STRUCTURE 23 137 SEALER LOCATIONS Continued ...
Page 1508: ...Fig 22 REAR DOORS 23 138 BODY STRUCTURE LH SEALER LOCATIONS Continued ...
Page 1511: ...Fig 26 ROOF Fig 27 SUNROOF LH BODY STRUCTURE 23 141 STRUCTURAL ADHESIVE LOCATIONS Continued ...
Page 1512: ...Fig 28 DOORS 23 142 BODY STRUCTURE LH STRUCTURAL ADHESIVE LOCATIONS Continued ...
Page 1513: ...Fig 29 DECKLID LH BODY STRUCTURE 23 143 STRUCTURAL ADHESIVE LOCATIONS Continued ...
Page 1516: ...Fig 30 ENGINE COMPARTMENT 23 146 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1517: ...Fig 31 ENGINE COMPARTMENT LH BODY STRUCTURE 23 147 WELD LOCATIONS Continued ...
Page 1518: ...Fig 32 ENGINE COMPARTMENT 23 148 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1519: ...Fig 33 ENGINE COMPARTMENT LH BODY STRUCTURE 23 149 WELD LOCATIONS Continued ...
Page 1520: ...Fig 34 ENGINE COMPARTMENT 23 150 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1521: ...Fig 35 ENGINE COMPARTMENT LH BODY STRUCTURE 23 151 WELD LOCATIONS Continued ...
Page 1522: ...Fig 36 ENGINE COMPARTMENT 23 152 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1523: ...Fig 37 ENGINE COMPARTMENT LH BODY STRUCTURE 23 153 WELD LOCATIONS Continued ...
Page 1524: ...Fig 38 ENGINE COMPARTMENT 23 154 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1525: ...Fig 39 ENGINE COMPARTMENT LH BODY STRUCTURE 23 155 WELD LOCATIONS Continued ...
Page 1526: ...Fig 40 ENGINE COMPARTMENT 23 156 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1527: ...Fig 41 DASH AND COWL LH BODY STRUCTURE 23 157 WELD LOCATIONS Continued ...
Page 1528: ...Fig 42 DASH AND COWL 23 158 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1529: ...Fig 43 DASH AND COWL LH BODY STRUCTURE 23 159 WELD LOCATIONS Continued ...
Page 1530: ...Fig 44 DASH AND COWL 23 160 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1531: ...Fig 45 DASH AND COWL LH BODY STRUCTURE 23 161 WELD LOCATIONS Continued ...
Page 1532: ...Fig 46 DASH AND COWL 23 162 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1533: ...Fig 47 ROOF PANEL AND ROOF BOWS LH BODY STRUCTURE 23 163 WELD LOCATIONS Continued ...
Page 1534: ...Fig 48 ROOF PANEL AND ROOF BOWS 23 164 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1535: ...Fig 49 ROOF PANEL AND ROOF BOWS LH BODY STRUCTURE 23 165 WELD LOCATIONS Continued ...
Page 1537: ...Fig 52 BODY SIDE APERTURE LH BODY STRUCTURE 23 167 WELD LOCATIONS Continued ...
Page 1538: ...Fig 53 BODY SIDE APERTURE 23 168 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1539: ...Fig 54 BODY SIDE APERTURE LH BODY STRUCTURE 23 169 WELD LOCATIONS Continued ...
Page 1540: ...Fig 55 BODY SIDE APERTURE 23 170 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1541: ...Fig 56 BODY SIDE APERTURE LH BODY STRUCTURE 23 171 WELD LOCATIONS Continued ...
Page 1542: ...Fig 57 BODY SIDE APERTURE 23 172 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1543: ...Fig 58 BODY SIDE APERTURE LH BODY STRUCTURE 23 173 WELD LOCATIONS Continued ...
Page 1544: ...Fig 59 BODY SIDE APERTURE 23 174 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1545: ...Fig 60 BODY SIDE APERTURE LH BODY STRUCTURE 23 175 WELD LOCATIONS Continued ...
Page 1546: ...Fig 61 BODY SIDE APERTURE 23 176 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1547: ...Fig 62 BODY SIDE APERTURE LH BODY STRUCTURE 23 177 WELD LOCATIONS Continued ...
Page 1548: ...Fig 63 BODY SIDE APERTURE 23 178 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1549: ...Fig 64 FLOOR PAN LH BODY STRUCTURE 23 179 WELD LOCATIONS Continued ...
Page 1550: ...Fig 65 FLOOR PAN 23 180 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1551: ...Fig 66 FLOOR PAN LH BODY STRUCTURE 23 181 WELD LOCATIONS Continued ...
Page 1552: ...Fig 67 FLOOR PAN 23 182 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1553: ...Fig 68 FLOOR PAN LH BODY STRUCTURE 23 183 WELD LOCATIONS Continued ...
Page 1554: ...Fig 69 FLOOR PAN 23 184 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1555: ...Fig 70 FLOOR PAN LH BODY STRUCTURE 23 185 WELD LOCATIONS Continued ...
Page 1556: ...Fig 71 FLOOR PAN 23 186 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1557: ...Fig 72 FLOOR PAN LH BODY STRUCTURE 23 187 WELD LOCATIONS Continued ...
Page 1558: ...Fig 73 FLOOR PAN 23 188 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1559: ...Fig 74 FLOOR PAN LH BODY STRUCTURE 23 189 WELD LOCATIONS Continued ...
Page 1560: ...Fig 75 FLOOR PAN 23 190 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1561: ...Fig 76 FLOOR PAN LH BODY STRUCTURE 23 191 WELD LOCATIONS Continued ...
Page 1562: ...Fig 77 FLOOR PAN 23 192 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1563: ...Fig 78 FLOOR PAN LH BODY STRUCTURE 23 193 WELD LOCATIONS Continued ...
Page 1564: ...Fig 79 FLOOR PAN Fig 80 FLOOR PAN 23 194 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1565: ...Fig 81 REAR SHELF LH BODY STRUCTURE 23 195 WELD LOCATIONS Continued ...
Page 1566: ...Fig 82 REAR SHELF 23 196 BODY STRUCTURE LH WELD LOCATIONS Continued ...
Page 1567: ...Fig 83 REAR SHELF LH BODY STRUCTURE 23 197 WELD LOCATIONS Continued ...
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